论文标题

与友好的干扰者的旋转和自动对立的物联网网络的安全性权衡分析

Security-Reliability Trade-Off Analysis for SWIPT- and AF-Based IoT Networks with Friendly Jammers

论文作者

Nguyen, Tan N., Tran, Dinh-Hieu, Van Chien, Trinh, Phan, Van-Duc, Voznak, Miroslav, Tin, Phu Tran, Chatzinotas, Symeon, Ng, Derrick Wing Kwan, Poor, H. Vincent

论文摘要

无线继电器网络中的射频(RF)能量收集(EH)引起了近期的极大兴趣,尤其是为了供应能源以中继群体中的节点(IoT)系统(IoT)系统,以协助来源和目的地之间的信息交换。此外,物联网设备的有限硬件,计算资源和能源可用性提出了各种安全挑战。为此,已经提出了物理层安全性(PLS),作为提供信息安全性的加密方法的有效替代方法。在这项研究中,我们提出了一种PLS方法,用于同时无线信息和功率传递(SWIPT)的半双链(HD)放大和前向(AF)中继系统,在存在窃听器的情况下。此外,我们考虑了静态功率分解继电器(SPSR)和动态功率分裂继电器(DPSR),以彻底研究每个收益的好处。为了进一步增强安全的沟通,我们考虑多个友好的干扰器,以防止窃听窃听的攻击。更具体地说,我们通过分别针对SPSR和DPSR方案得出封闭形式(OP)和截距概率(IP)来提供可靠性和安全性分析。然后,还进行了模拟以验证我们的分析和提议方案的有效性。具体而言,数值结果说明了拟议系统的可靠性与安全性之间的非平凡权衡。此外,我们从仿真结果中得出结论,所提出的DPSR方案在不同参数对系统性能的影响下,根据OP和IP优于基于SPSR的方案。

Radio-frequency (RF) energy harvesting (EH) in wireless relaying networks has attracted considerable recent interest, especially for supplying energy to relay nodes in Internet-of-Things (IoT) systems to assist the information exchange between a source and a destination. Moreover, limited hardware, computational resources, and energy availability of IoT devices have raised various security challenges. To this end, physical layer security (PLS) has been proposed as an effective alternative to cryptographic methods for providing information security. In this study, we propose a PLS approach for simultaneous wireless information and power transfer (SWIPT)-based half-duplex (HD) amplify-and-forward (AF) relaying systems in the presence of an eavesdropper. Furthermore, we take into account both static power splitting relaying (SPSR) and dynamic power splitting relaying (DPSR) to thoroughly investigate the benefits of each one. To further enhance secure communication, we consider multiple friendly jammers to help prevent wiretapping attacks from the eavesdropper. More specifically, we provide a reliability and security analysis by deriving closed-form expressions of outage probability (OP) and intercept probability (IP), respectively, for both the SPSR and DPSR schemes. Then, simulations are also performed to validate our analysis and the effectiveness of the proposed schemes. Specifically, numerical results illustrate the non-trivial trade-off between reliability and security of the proposed system. In addition, we conclude from the simulation results that the proposed DPSR scheme outperforms the SPSR-based scheme in terms of OP and IP under the influences of different parameters on system performance.

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